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Please tell me if it is safe to do something like this:

#include <stdio.h>
#include <malloc.h>
#include <string.h>

int main(void)
{
    char* msg;

    strcpy(msg, "Hello World!!!");  //<---------

    printf("%s\n", msg); 

    return 0;
}

or should the following must be used?

char* msg = (char*)malloc(sizeof(char) * 15);

Thanks for all!

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4  
You need the malloc, otherwise msg is just a dangling pointer. –  Paul R Mar 18 '11 at 16:28
2  
Use malloc, but remove the cast and sizeof(char). The correct usage is char *msg = malloc(15); –  R.. Mar 18 '11 at 16:30
    
Also malloc() is declared in <stdlib.h> not <malloc.h> –  pmg Mar 18 '11 at 18:10
    
And the return value from malloc() should ALWAYS be checked: char *msg = malloc(15); if (msg == NULL) /* not ok to proceed */; –  pmg Mar 18 '11 at 18:13

6 Answers 6

up vote 7 down vote accepted

Your original code does not assign msg. Attempting to strcpy to it would be bad. You need to allocate some space before you strcpy into it. You could use malloc as you suggest or allocate space on the stack like this:

char msg[15];

If you malloc the memory you should remember to free it at some point. If you allocate on the stack the memory will be automatically returned to the stack when it goes out of scope (e.g. the function exits). In both cases you need to be careful to allocate enough to be able to copy the longest string into it. You might want to take a look at strncpy to avoid overflowing the array.

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if the size of msg is less than the string's length, say "char msg[3]; strcpy(msg, "abcdefg");", would be ok? If now, I cout msg, will the output be "abcdefg"? –  Alcott Sep 16 '11 at 12:56
1  
No it will not. char msg[3] allocates space for 3 characters. You cannot copy 8 characters into that space (7 letters plus a null terminator). –  qbert220 Sep 16 '11 at 14:07

strdup does the malloc and strcpy for you

char *msg = strdup("hello world");
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strdup is not C standard, not C89 and not C99 –  user411313 Mar 18 '11 at 17:54
    
POSIX is a standard. There are a lot of things that we use that aren't C89 or C99. That isn't reason not to use something so simple. Please use strdup before writing a dense macro like MYSTRDUP(). strdup takes 1 line to implement as a function, and frankly, should be in the standard. –  codenheim Apr 21 at 18:59

You need to allocate the space. Use malloc before the strcpy.

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The first version is not safe. And, msg should be pointing to valid memory location for "Hello World!!!" to get copied.

char* msg = (char*)malloc(sizeof(char) * 15);
strcpy(msg, "Hello World!!!");
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2  
don't cast the return of malloc and don't use sizof(char). –  Jens Gustedt Mar 18 '11 at 16:36
    
why not sizeof(char)? –  pm100 Nov 2 at 18:29
#define MYSTRDUP(str,lit) strcpy(str=malloc(strlen(lit)+1),lit)

and now its easy and standard conform:

char *s;
MYSTRDUP(s,"foo bar");
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 char* msg;
 strcpy(msg, "Hello World!!!");  //<---------Ewwwww
 printf("%s\n", msg); 

This is UB. No second thoughts. msg is a wild pointer and trying to dereference it might cause segfault on your implementation.

msg to be pointing to a valid memory location large enough to hold "Hello World".

Try

char* msg = malloc(15);
strcpy(msg, "Hello World!!!");

or

char msg[20]; 
strcpy(msg, "Hello World!!!");
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